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以下程序使用 MIDO 读取“g1.mid”,然后将其保存到“g1_new.mid”。我的问题是:在读取文件时,“msg.time”是一个浮点值,但在保存文件时,“消息中的时间”是一个整数。在这种情况下,我们如何将 'msg.time' 转换为 'tick in message'?

from mido import MidiFile 
from mido import Message, MidiTrack

mid = MidiFile()
track = MidiTrack()
mid.tracks.append(track)

for msg in MidiFile('g1.mid'):
    if (not msg.is_meta):
        if (msg.type == 'note_on'):
            # how to convert msg.time to tick to fill in '?'
            track.append(Message('note_on', note=msg.note, velocity=msg.velocity, time=?))
        elif (msg.type == 'note_off'):
            # how to convert msg.time to tick to fill in '?'
            track.append(Message('note_off', note=msg.note, velocity=msg.velocity, time=?))
        elif (msg.type == 'program_change'):
            track.append(Message('program_change', program=msg.program, channel=msg.channel))

mid.save('g1_new.mid')

注意:这段代码在一个关于音乐生成的项目中。

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1 回答 1

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当您迭代MidiFile对象本身时,时间戳将被显式转换:

class MidiFile(object):
    ...
    def __iter__(self):
        ...
        tempo = DEFAULT_TEMPO
        for msg in merge_tracks(self.tracks):
            # Convert message time from absolute time
            # in ticks to relative time in seconds.
            if msg.time > 0:
                delta = tick2second(msg.time, self.ticks_per_beat, tempo)
            else:
                delta = 0

            yield msg.copy(time=delta)

            if msg.type == 'set_tempo':
                tempo = msg.tempo

因此,只需直接迭代mid.tracks(或合并的轨道)。

于 2017-08-19T16:07:11.683 回答